4.8 Article

In situ liquid transmission electron microscopy reveals self-assembly-driven nucleation in radiolytic synthesis of iron oxide nanoparticles in organic media

Journal

NANOSCALE
Volume 14, Issue 30, Pages 10950-10957

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d2nr01511k

Keywords

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Funding

  1. French National Agency for Research (ANR) [ANR-16-CE05-0011]
  2. USIAS

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This study investigates the formation process of iron oxide nanoparticles using IL-TEM, and discovers the spontaneous formation of vesicular assemblies made of iron polycation-based precursors sandwiched between stearate layers. By controlling the electron dose, the crystal growth and morphology of the resulting nanoparticles can be controlled. This research sheds new light on the formation process of metal oxide nanoparticles and offers new ways for the synthesis of inorganic colloidal systems with tunable shape and size.
We have investigated the early stages of the formation of iron oxide nanoparticles from iron stearate precursors in the presence of sodium stearate in an organic solvent by in situ liquid phase transmission electron microscopy (IL-TEM). Before nucleation, we have evidenced the spontaneous formation of vesicular assemblies made of iron polycation-based precursors sandwiched between stearate layers. Nucleation of iron oxide nanoparticles occurs within the walls of the vesicles, which subsequently collapse upon the consumption of the iron precursors and the growth of the nanoparticles. We then evidenced that fine control of the electron dose, and therefore of the local concentration of reactive iron species in the vicinity of the nuclei, enables controlling crystal growth and selecting the morphology of the resulting iron oxide nanoparticles. Such a direct observation of the nucleation process templated by vesicular assemblies in a hydrophobic organic solvent sheds new light on the formation process of metal oxide nanoparticles and therefore opens ways for the synthesis of inorganic colloidal systems with tunable shape and size.

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